首页> 外文期刊>Journal of chemical theory and computation: JCTC >An Iterative Fragment Scheme for the ACKS2 Electronic Polarization Model: Application to Molecular Dimers and Chains
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An Iterative Fragment Scheme for the ACKS2 Electronic Polarization Model: Application to Molecular Dimers and Chains

机译:ACKS2电子偏振模型的迭代片段方案:分子二聚体和链的应用

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The treatment of electrostatic interactions is a key ingredient in the force field-based simulation of condensed phase systems. Most approaches used fixed, site-specific point charges. Yet, it is now clear that many applications of force fields (FFs) demand more sophisticated treatments, prompting the implementation of charge equilibration methods in polarizable FFs to allow the redistribution of charge within the system. One approach allowing both, charge redistribution and site-specific polarization, while at the same time solving methodological shortcomings of earlier methods, is the first-principles-derived atom-condensed Kohn-Sham density functional theory method approximated to the second order (ACKS2). In this work, we present two fragment approaches to ACKS2, termed f-ACKS2 and a self-consistent version, scf-ACKS2, that treat condensed phase systems as a collection of electronically polarizable molecular fragments. The fragmentation approach to ACKS2 not only leads to a more transferable and less system-specific collection of electronic response parameters but also opens up the method to large condensed phase systems. We validate the accuracies of f-ACKS2 and scf-ACKS2 by comparing polarization energies and induced dipole moments for a number of charged hydrocarbon dimers against DFT reference calculations. Finally, we also apply both fragmented ACKS2 variants to calculate the polarization energy for electron-hole pair separation along a chain of anthracene molecules and find excellent agreement with reference DFT calculations.
机译:静电相互作用的处理是基于力场的浓缩相系统模拟的关键成分。大多数方法使用固定,现场特定的点收费。然而,现在清楚的是,强制场(FFS)的许多应用需要更复杂的处理,提示在极化的FF中实施电荷平衡方法,以允许在系统内重新分配充电。一种方法允许两者,电荷再分配和特定的偏振,同时求解前方方法的方法论缺点,是近似到二阶(ACKS2)的第一原理衍生的原子凝聚的Kohn-Mham密度函数理论方法。在这项工作中,我们向ACKS2,称为F-ACKS2和自我一致的版本,SCF-ACKS2的两个片段接近,其将冷凝的相位系统视为电子可极化分子片段的集合。 ACKS2的碎片方法不仅导致更可转换和更少的系统特定的电子响应参数集合,而且还将该方法打开到大型冷凝阶段系统。通过比较偏振能量和诱导偶极矩的偏振碳氢化合物二聚体来验证F-ACKS2和SCF-ACKS2的精度,用于抵抗DFT参考计算。最后,我们还应用碎片的Acks2变体,以计算沿着蒽分子链的电子 - 空穴对分离的偏振能量,并与参考DFT计算找到很好的一致性。

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